Abstract

A numerical study of gravity-driven monolayer granular flow in a contracted vertical silo is carried out using discrete element method. The bed dimension is 800×2000×12mm in wide, height, and depth directions, respectively, filled with 12,210 spherical granular particles of diameter of 12mm. The particles are loaded onto the bed from nine fixed points equally spaced at the top and discharged from a 120mm wide orifice at the bottom of the bed. By tracking particle trajectories and analyzing them via probability density function, a Gaussian-form dispersion of particles in the horizontal direction is shown. The results are validated by experimental observations. For mechanical analysis, an ideal but general geometrical model of particle dispersion is proposed. It explains the mechanism of Gaussian distribution and the feature of narrow band configuration of particle dispersion successfully. It improves the understanding of particle dispersion characteristics of gravity-driven slow particle flow, and provides a way to estimate the performance of particle-bed reactor.

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